Next-generation humanized patient-derived xenograft mouse model for pre-clinical antibody studies in neuroblastoma

Rosa Nguyen1,2, Anand G Patel3,4, Lyra M Griffiths4

  • 1Department of Oncology, St. Jude Children's Research Hospital, Memphis, TN, USA. hongharosa.nguyen@nih.gov.

Insights

A new humanized mouse model supports human natural killer (NK) cell development for testing immuno-oncology (IO) therapies in neuroblastoma. This model enables preclinical antibody and cytokine testing, advancing cancer research.

Area of Science:

  • Immunology
  • Oncology
  • Preclinical Research

Background:

  • Faithful tumor mouse models are crucial for immuno-oncology (IO) research, especially for rare pediatric cancers.
  • Conventional models lack the complexity and heterogeneity of human tumors, limiting preclinical therapeutic development.
  • There is a need for advanced models that recapitulate human tumor microenvironments for effective cancer immunity studies.

Purpose of the Study:

  • To characterize a novel humanized mouse model supporting human natural killer (NK) cell development.
  • To evaluate the engraftment of neuroblastoma patient-derived xenografts (O-PDX) in this model.
  • To assess the potential for preclinical antibody and cytokine testing in immuno-oncology.

Main Methods:

  • Development of a humanized mouse model for NK cell function.
  • Engraftment of orthotopic patient-derived xenografts (O-PDX) of neuroblastoma.
  • Utilized cytotoxicity assays, single-cell RNA-sequencing, and multi-color flow cytometry for analysis.

Main Results:

  • Human NK cells developed and were functional in the humanized mice, capable of cytotoxicity and supporting tumor engraftment.
  • NK cells could be therapeutically redirected to induce antibody-dependent cell-mediated cytotoxicity (ADCC).
  • A subset of activated NK cells, found in healthy controls, was absent, potentially due to tumor-mediated suppression.

Conclusions:

  • The humanized O-PDX mouse model is a faithful system for testing immuno-oncology applications in neuroblastoma.
  • This model allows for the study of underlying immunologic processes in the tumor microenvironment.
  • Findings suggest tumor-mediated suppression may affect NK cell activation in neuroblastoma patients.